Accounting calendar and cyclic ageing factors in diagnostic and prognostic models of second-life EV batteries application in energy storage systems

G. Kostenko
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Abstract

The rapid expansion of the electric vehicle market has significantly increased the demand for lithium-ion batteries, posing challenges for manufacturers and policymakers regarding efficient use and recycling. When these batteries reach the end of their primary lifecycle, their repurposing for secondary applications such as energy storage becomes critical to addressing environmental and resource management issues. This paper focuses on applying second-life batteries in energy storage systems, emphasizing the importance of accounting for calendar and cyclic aging factors to optimize battery performance and longevity. Calendar aging refers to the degradation that occurs over time due to chemical reactions within the battery, even when it is not in use. This type of aging is influenced by temperature, state of charge (SOC), and storage conditions. Cyclic aging, on the other hand, results from repeated charging and discharging cycles, which cause mechanical and chemical changes within the battery, leading to capacity fade and increased internal resistance. The combined effects of these aging processes necessitate the development of high-precision diagnostic and prognostic models to manage the performance and longevity of second-life batteries effectively. In Ukraine, the adoption of electric vehicles is accelerating, leading to an influx of used electric vehicles. This situation necessitates the prompt development of strategies for repurposing these batteries for energy storage applications. The complexities associated with final recycling processes make secondary use an attractive interim solution. By repurposing used EV batteries, Ukraine can mitigate immediate challenges related to battery waste and resource scarcity while supporting the transition to renewable energy sources. This paper highlights the need for an integral degradation index (DI) that combines calendar and cyclic aging factors with stochastic influences to provide a comprehensive measure of battery health. Such an index is essential for optimizing battery management practices, including the scheduling of charging and discharging cycles, to extend the operational life of secondary batteries. The study also presents practical recommendations for implementing these models in various energy storage scenarios, ranging from residential solar energy systems to industrial grid support and electric vehicle charging stations. By adopting optimized battery management strategies, the potential for extending the lifespan of secondary batteries and reducing operational costs is significant. This approach supports sustainable energy practices and aligns with global efforts to promote renewable energy sources and circular economy principles. Keywords: Lithium-Ion Battery, Electric Vehicle, Energy Storage, Battery Degradation, Calendar Ageing, Cyclic Ageing, Integral Degradation Index, Remaining Useful Life, State of Health.
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在储能系统中应用的二次寿命电动汽车电池诊断和预报模型中考虑日历和周期老化因素
电动汽车市场的快速扩张大大增加了对锂离子电池的需求,同时也给制造商和政策制定者带来了高效使用和回收方面的挑战。当这些电池的一次生命周期结束时,将其重新用于二次应用(如储能)对解决环境和资源管理问题至关重要。本文重点介绍了二次寿命电池在储能系统中的应用,强调了考虑日历老化和循环老化因素以优化电池性能和寿命的重要性。日历老化是指随着时间的推移,即使在不使用电池的情况下,电池内部的化学反应也会导致电池老化。这种老化受温度、充电状态(SOC)和存储条件的影响。而循环老化则是由于反复的充电和放电循环造成电池内部的机械和化学变化,从而导致容量衰减和内阻增加。这些老化过程的综合影响要求开发高精度的诊断和预测模型,以有效管理二次寿命电池的性能和寿命。在乌克兰,电动汽车的应用正在加速,导致大量二手电动汽车涌入。在这种情况下,有必要迅速制定战略,将这些电池重新用于储能应用。与最终回收流程相关的复杂性使得二次利用成为一个极具吸引力的临时解决方案。通过对废旧电动汽车电池进行再利用,乌克兰可以缓解与电池浪费和资源稀缺相关的直接挑战,同时支持向可再生能源的过渡。本文强调了对综合降解指数(DI)的需求,该指数将日历和周期性老化因素与随机影响因素相结合,以提供电池健康状况的综合衡量标准。这种指数对于优化电池管理方法(包括充电和放电周期的安排)以延长二次电池的运行寿命至关重要。该研究还提出了在各种能源存储场景中实施这些模型的实用建议,这些场景包括住宅太阳能系统、工业电网支持和电动汽车充电站。通过采用优化的电池管理策略,可显著延长二次电池的使用寿命并降低运营成本。这种方法支持可持续能源实践,符合全球推广可再生能源和循环经济原则的努力。关键词锂离子电池 电动汽车 储能 电池降解 历时老化 循环老化 积分降解指数 剩余使用寿命 健康状况
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